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Structures of Neural Network Effective Theories
Published 3 May 2023 in hep-th, cond-mat.dis-nn, cs.LG, hep-ph, and stat.ML | (2305.02334v1)
Abstract: We develop a diagrammatic approach to effective field theories (EFTs) corresponding to deep neural networks at initialization, which dramatically simplifies computations of finite-width corrections to neuron statistics. The structures of EFT calculations make it transparent that a single condition governs criticality of all connected correlators of neuron preactivations. Understanding of such EFTs may facilitate progress in both deep learning and field theory simulations.
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